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Low thermal conductivity of iron-silicon alloys at Earth’s core conditions with implications for the geodynamo

机译:地球核心条件下的铁硅合金的低导热系数,具有对Geodynamo的影响

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Earth's core is composed of iron (Fe) alloyed with light elements, e.g., silicon (Si). Its thermal conductivity critically affects Earth's thermal structure, evolution, and dynamics, as it controls the magnitude of thermal and compositional sources required to sustain a geodynamo over Earth's history. Here we directly measured thermal conductivities of solid Fe and Fe-Si alloys up to 144?GPa and 3300?K. 15 at% Si alloyed in Fe substantially reduces its conductivity by about 2 folds at 132?GPa and 3000?K. An outer core with 15 at% Si would have a conductivity of about 20?W?m -1 K -1 , lower than pure Fe at similar pressure-temperature conditions. This suggests a lower minimum heat flow, around 3 TW, across the core-mantle boundary than previously expected, and thus less thermal energy needed to operate the geodynamo. Our results provide key constraints on inner core age that could be older than two billion-years.
机译:地球的核心由铁(Fe)组成,其中具有轻质元素,例如硅(Si)。其导热率严重影响地球的热结构,进化和动态,因为它控制了在地球历史上维持Geodynamo所需的热和组成来源的大小。在这里,我们将固体Fe和Fe-Si合金的热导体直接测量,可达144℃和3300?K.在Fe中合金化的%Si基本上将其电导率降低在132℃和3000℃下约2倍。具有15at%Si的外芯将具有约20μm-1k-1的电导率,低于纯Fe,在类似的压力温度条件下。这表明芯片边界的最小最小热流大约3次,比以前预期的,从而较少地操作Geodynamo所需的热能。我们的结果为内核核心年龄的关键限制提供了超过20亿年的核心年龄。

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